Flow control device in diluent rectification process
By designing a combination of support, control components, placement components, control motor, and adjustment components, the problem of inconvenient flow and position adjustment during diluent distillation was solved, achieving precise control of diluent flow rate and position, and improving the efficiency of diluent distillation.
Patent Information
- Application Number
- CN202423050697.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-11
AI Technical Summary
The existing flow control devices in the distillation process of diluents are structurally incomplete and cannot effectively adjust the flow rate and position, resulting in inconvenience in use.
A flow control device is designed, comprising a support, a control component, a placement component, a control motor, and an adjustment component. The control motor drives a screw to move the adjustment component, and in conjunction with a sliding block and a connecting rod, the flow space is adjusted, thereby controlling the flow rate and position.
It enables precise control of the diluent flow rate and position, improving the efficiency and convenience of the diluent distillation process.
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Figure CN223504864U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of diluent technology, and more specifically, it relates to a flow control device in the diluent distillation process. Background Technology
[0002] Diluents, also called "fillers," are inert substances added to dilute raw materials when they are processed into powder or to facilitate spraying; such as clay, kaolin, pottery clay, talc, etc.
[0003] Based on existing technology, it has been found that the existing flow control devices in the diluent distillation process have an imperfect structure for controlling the diluent flow, which makes it inconvenient to perform distillation and also makes it inconvenient to use because the position of the device cannot be adjusted. Utility Model Content
[0004] To address the aforementioned technical problems, this utility model provides a flow control device for the distillation process of a diluent, thereby resolving the issues raised in the background art.
[0005] The flow control device in the distillation process of this utility model is achieved by the following specific technical means:
[0006] A flow control device for a diluent distillation process includes a support, a control component, a placement component, a control motor, and an adjusting component. The support is a rectangular frame structure. Two sets of control components are located at the top inside the main body. Each control component has a U-shaped structure and a tilting column on its front side. The placement component is located in the middle of the main body. The control component is located in the middle of the placement component. The control motor is located inside the control component. The adjusting component is located inside the control component.
[0007] Furthermore, the main body includes a sliding groove and a sliding channel; the sliding groove is opened on both sides of the inner top of the main body and the sliding groove has a T-shaped structure; the sliding channel is located on the top of the front inner side of the main body and the sliding channel has an overall T-shaped structure; a rotating groove is provided on one side of the sliding channel and a through hole penetrating the main body is opened on the other side of the sliding channel; a rotating shaft is provided in the middle of the sliding channel and two sets of threads in opposite directions are provided around the rotating shaft.
[0008] Furthermore, the control component includes: a sliding block and a connecting rod; the sliding blocks on both sides are located on one side of the control component, and the sliding blocks have a T-shaped structure and are inserted into the sliding groove. A threaded hole is opened in the middle of the sliding block, and a rotating shaft of the sliding groove is inserted into the threaded hole; the connecting rod is located on one side of the control component, and the connecting rod has a cylindrical structure. Circular holes are opened at both ends of the connecting rod, and a flipping column of the control component is inserted into the circular hole on one side.
[0009] Furthermore, the placement component includes: a placement groove, a slider, and a flipping component; the placement groove is located in the middle of the placement component and has a T-shaped cross-section; the slider is located on both sides of the placement component and is inserted into the groove; two sets of flipping components are located on the rear side of the placement component, and a flipping post is provided on the rear side of the flipping component, and the flipping post of the flipping component is inserted into the round hole at the other end of the connecting rod.
[0010] Furthermore, the control component includes a flow channel and a moving channel; the flow channel is located in the middle of the control component; the moving channel is located inside the control component and is connected to the flow channel; the moving channel has sliding columns on both sides; a motor mounting slot is located in the middle of one end of the moving channel; and a control motor is located inside the motor mounting slot.
[0011] Furthermore, the motor shaft of the control motor is connected to a screw, and the screw is a cylindrical structure with a central protrusion.
[0012] Furthermore, the adjusting component includes a control groove and a moving component; the control groove is formed inside the adjusting component, and the other end of a screw is inserted into the control groove; the control groove is threaded, and the thread of the control groove meshes with the thread of the screw; the moving groove is located on both sides of the adjusting component, and the moving component is inserted into the moving groove.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] In this device, during use, the diluent to be distilled is poured into the flow tank. The control motor is started, driving the screw to rotate. The screw, through the control tank, moves the adjusting component. The adjusting component, in conjunction with the moving component, moves within the flow tank, thus reducing the flow space and controlling the flow rate, facilitating use. To adjust the position, the rotating shaft is rotated. The shaft, through two sets of threads, drives the sliding block to slide within the sliding tank, moving the control component and the connecting rod. The connecting rod then pushes the tilting component, which in turn moves the placing component. The placing component then moves the slider within the sliding tank, adjusting the position and facilitating control of the outflow location, thus simplifying use. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the main structure of this utility model.
[0016] Figure 2 This is a structural schematic diagram of the bracket and control components of this utility model.
[0017] Figure 3 This is a structural schematic diagram of the placement component of this utility model.
[0018] Figure 4 This is a structural schematic diagram of the control component, control motor, and adjustment component of this utility model.
[0019] In the diagram, the correspondence between component names and drawing numbers is as follows:
[0020] 1. Bracket;
[0021] 101. Slide groove; 102. Sliding groove;
[0022] 2. Control components;
[0023] 201. Sliding block; 202. Connecting rod;
[0024] 3. Placement components;
[0025] 301. Placement slot; 302. Slider; 303. Flip-over component;
[0026] 4. Auxiliary components;
[0027] 401. Flow channel; 402. Moving channel;
[0028] 5. Control the motor;
[0029] 501. Screw;
[0030] 6. Adjusting components;
[0031] 601. Control slot; 602. Moving part. Detailed Implementation
[0032] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples.
[0033] Example:
[0034] As attached Figure 1 To be continued Figure 4 As shown:
[0035] This utility model provides a flow control device in the distillation process of a diluent, including a support 1, a control component 2, a placement component 3, an auxiliary component 4, a control motor 5, and an adjusting component 6; the support 1 is a rectangular frame structure; two sets of control components 2 are located inside the top of the support 1, the control components 2 are U-shaped, and a flip column is provided on the front side of the control components 2; the placement component 3 is located in the middle of the support 1; the auxiliary component 4 is located in the middle of the placement component 3; the control motor 5 is located inside the auxiliary component 4; and the adjusting component 6 is located inside the auxiliary component 4.
[0036] The bracket 1 includes a sliding groove 101 and a sliding channel 102. The sliding groove 101 is located on both sides of the inner top of the bracket 1 and has a T-shaped structure. The sliding channel 102 is located on the top of the inner front side of the bracket 1 and has a T-shaped structure. One side of the sliding channel 102 has a rotating groove and the other side of the sliding channel 102 has a through hole that penetrates the bracket 1. The sliding channel 102 has a rotating shaft in the middle position inside and two sets of threads in opposite directions are provided around the rotating shaft.
[0037] Using the above scheme, the slide groove 101 is used to assist the slider 302 in sliding, and the slide groove 102 is used to assist the slider block 201 in sliding.
[0038] The control component 2 includes: a sliding block 201 and a connecting rod 202; the two sliding blocks 201 are located on one side of the control component 2, and the sliding blocks 201 have a T-shaped structure and are inserted into the sliding groove 102. A threaded hole is opened in the middle of the sliding block 201, and the rotating shaft of the sliding groove 102 is inserted into the threaded hole; the connecting rod 202 is located on one side of the control component 2, and the connecting rod 202 has a cylindrical structure. Circular holes are opened at both ends of the connecting rod 202, and a flipping column of the control component 2 is inserted into the circular hole on one side.
[0039] Using the above scheme, the sliding block 201 is used to assist the control component 2 in moving, and the connecting rod 202 is used to assist the placement component 3 in moving.
[0040] The placement component 3 includes a placement groove 301, a slider 302, and a flipping component 303. The placement groove 301 is located in the middle of the placement component 3 and has a T-shaped cross-section. The slider 302 is located on both sides of the placement component 3 and is inserted into the groove 101. Two sets of flipping components 303 are located on the rear side of the placement component 3 and have flipping posts on the rear side. The flipping posts of the flipping components 303 are inserted into the round holes at the other end of the connecting rod 202.
[0041] Using the above scheme, the placement slot 301 is used to place the control component 4.
[0042] The auxiliary component 4 includes a flow channel 401 and a moving channel 402. The flow channel 401 is located in the middle of the auxiliary component 4. The moving channel 402 is located inside the auxiliary component 4 and is connected to the flow channel 401. The moving channel 402 has sliding columns on both sides and a motor mounting slot is located in the middle of one end of the moving channel 402. A control motor 5 is located inside the motor mounting slot.
[0043] Among them, the motor shaft of the control motor 5 is connected to a screw 501, and the screw 501 is a cylindrical structure with a central protrusion.
[0044] The adjusting component 6 includes a control groove 601 and a moving component 602. The control groove 601 is opened inside the adjusting component 6, and the other end of the screw 501 is inserted into the control groove 601. The control groove 601 is threaded, and the thread of the control groove 601 meshes with the thread of the screw 501. The moving component 602 is located on both sides of the adjusting component 6, and the moving component 602 is inserted into the moving groove 402.
[0045] The specific usage and function of this embodiment are as follows:
[0046] In this invention, when in use, the diluent to be distilled is poured into the flow tank 401. The control motor 5 is started, which drives the screw 501 to rotate. The screw 501 then moves the adjusting member 6 through the control tank 601. The adjusting member 6, in conjunction with the moving member 602, moves inside the flow tank 402, thereby reducing the flow space of the flow tank 401 and controlling the flow rate, thus facilitating use. When adjusting the position, the rotating shaft is rotated, which drives the sliding block 201 to slide inside the sliding tank 102 through two sets of threads. This drives the auxiliary member 4 to move, which in turn drives the connecting rod 202 to move. The connecting rod 202 then pushes the flipping member 303 to move, which in turn drives the placing member 3 to move. The placing member 3 then drives the slider 302 to slide inside the sliding tank 101, thereby adjusting the position and facilitating control of the outflow position, thus facilitating use.
[0047] Any aspects of this utility model not described in detail are well-known technologies to those skilled in the art.
Claims
1. A flow control device for a diluent distillation process, comprising a support (1), a control component (2), a placement component (3), an auxiliary component (4), a control motor (5), and an adjusting component (6); characterized in that: The bracket (1) is a rectangular frame structure; two sets of control components (2) are located inside the top of the bracket (1), the control components (2) are U-shaped structures, and the front side of the control components (2) is provided with a flip column; the placement component (3) is located in the middle of the bracket (1); the auxiliary component (4) is located in the middle of the placement component (3); the control motor (5) is located inside the auxiliary component (4); the adjustment component (6) is located inside the auxiliary component (4).
2. The flow control device in the distillation process of a diluent as described in claim 1, characterized in that: The bracket (1) includes a sliding groove (101) and a sliding groove (102); the sliding groove (101) is opened on both sides of the inner top of the bracket (1), and the sliding groove (101) has a T-shaped structure; the sliding groove (102) is located on the top of the front inner side of the bracket (1), and the sliding groove (102) has a T-shaped structure as a whole; one side of the sliding groove (102) is provided with a rotating groove, and the other side of the sliding groove (102) is provided with a through hole penetrating the bracket (1); a rotating shaft is provided in the middle of the sliding groove (102), and two sets of threads in opposite directions are provided around the rotating shaft.
3. The flow control device in the distillation process of a diluent as described in claim 1, characterized in that: The control component (2) includes: a sliding block (201) and a connecting rod (202); the two sliding blocks (201) are located on one side of the control component (2), and the sliding blocks (201) are T-shaped and inserted into the sliding groove (102). A threaded hole is opened in the middle of the sliding block (201), and the rotating shaft of the sliding groove (102) is inserted into the threaded hole; the connecting rod (202) is located on one side of the control component (2), and the connecting rod (202) is cylindrical. Circular holes are opened at both ends of the connecting rod (202), and the rotating column of the control component (2) is inserted into the circular hole on one side.
4. The flow control device in the distillation process of a diluent as described in claim 1, characterized in that: The placement component (3) includes: a placement groove (301), a slider (302), and a flipping component (303); the placement groove (301) is located in the middle of the placement component (3), and the cross-section of the placement groove (301) is T-shaped; the slider (302) is located on both sides of the placement component (3), and the slider (302) is inserted into the groove (101); two sets of the flipping components (303) are located on the rear side of the placement component (3), and the rear side of the flipping component (303) is provided with a flipping post, and the flipping post of the flipping component (303) is inserted into the round hole at the other end of the connecting rod (202).
5. The flow control device in the distillation process of a diluent as described in claim 1, characterized in that: The auxiliary component (4) includes a flow channel (401) and a moving channel (402); the flow channel (401) is located in the middle of the auxiliary component (4); the moving channel (402) is located inside the auxiliary component (4) and is connected to the flow channel (401); the moving channel (402) has sliding columns on both sides; a motor mounting slot is located in the middle of one end of the moving channel (402); and a control motor (5) is located inside the motor mounting slot.
6. The flow control device in the distillation process of a diluent as described in claim 1, characterized in that: The motor shaft of the control motor (5) is connected to a screw (501), and the screw (501) is a cylindrical structure with a central protrusion.
7. The flow control device in the distillation process of a diluent as described in claim 1, characterized in that: The adjusting member (6) includes a control groove (601) and a moving member (602); the control groove (601) is opened inside the adjusting member (6), and the other end of the screw (501) is inserted into the control groove (601). The control groove (601) is provided with a thread, and the thread of the control groove (601) meshes with the thread of the screw (501); the moving member (602) is provided on both sides of the adjusting member (6), and the moving member (602) is inserted into the moving groove (402).